用TRACE进行超临界流动的传热

J. Spore, G. Roth
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引用次数: 0

摘要

在高于临界压力的水压下的流动形式被描述为超临界流动。超临界流体没有相变。从壁面到流体的热传递是单相的(没有沸腾或冷凝)。实验数据表明,在涉及超临界单相换热的条件下,Dittus-Boelter换热关系式存在较大误差。对于超过超临界压力的压力,伪临界温度可以定义为压力的函数。伪临界温度是指在压力保持不变的情况下,比热达到峰值的温度。在伪临界温度附近,传热边界层的流体性质发生了显著变化。性能的巨大变化是导致迪图斯-伯尔特传热相关性失效的原因。与实验数据的比较表明,对于单相超临界传热,Mokry传热关联比Dittus-Boelter传热关联有显著改进。选择Mokry相关性纳入TRACE。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat Transfer for Supercritical Flow With TRACE
Flow regimes at water pressures above the critical pressure are characterized as supercritical flow. Supercritical flows have no phase change. The heat transfer from the wall to the fluid is single phase (there is no boiling or condensation). Experimental data indicate that for conditions that involve supercritical single-phase heat transfer, the Dittus-Boelter heat transfer correlation can be in significant error. A pseudo-critical temperature can be defined as a function of pressure for pressures that exceed the supercritical pressure. The pseudo-critical temperature is defined for heat transfer purposes as the temperature at which the specific heat peaks as the pressure is held constant. There is significant variation in fluid properties across the heat transfer boundary layer at temperatures near the pseudo-critical temperature. The large variation in properties is the reason for the failure of the Dittus-Boelter heat transfer correlation. Comparisons to experimental data indicate that the Mokry heat transfer correlation is a significant improvement over the Dittus-Boelter heat transfer correlation for single phase supercritical heat transfer. The Mokry correlation was chosen to be included into TRACE.
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